1. 三峡大学机械与动力学院,宜昌,443002
2. 三峡大学水电机械设备设计与维护湖北省重点实验室,宜昌,443002
3. 三峡大学创新创业学院,宜昌,443002
纸质出版:2025
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周祥曼, 谭晨宇, 赵美云, 等. 电弧增材制造铜铁合金材料组织与性能的研究[J]. 航空制造技术, 2025,68(15).
ZHOU Xiangma, TAN Chenyu, ZHAO Meiyun, et al. Study on Microstructure and Properties of Cu–Fe Alloy Fabricated by Wire Arc Additive Manufacturing[J]. Aeronautical Manufacturing Technology, 2025, 68(15).
周祥曼, 谭晨宇, 赵美云, 等. 电弧增材制造铜铁合金材料组织与性能的研究[J]. 航空制造技术, 2025,68(15). DOI: 10.16080/j.issn1671-833x.2025.15.121.
ZHOU Xiangma, TAN Chenyu, ZHAO Meiyun, et al. Study on Microstructure and Properties of Cu–Fe Alloy Fabricated by Wire Arc Additive Manufacturing[J]. Aeronautical Manufacturing Technology, 2025, 68(15). DOI: 10.16080/j.issn1671-833x.2025.15.121.
铜铁合金兼具优异导电、导热性能和优良强韧性、软磁性能,是一种优良电接触和电磁屏蔽材料,在航空航天、国防军工、电子通讯的电接触装置及电磁屏蔽设备上具有广阔的应用前景。本文采用双丝电弧增材制造技术制备不同铜质量分数的铜铁合金,并通过金相显微镜、维氏硬度计和载流摩擦磨损试验机测试其显微组织、硬度、动态表面接触电阻及碳棒的磨损量。结果表明,随着铜质量分数从0增加到100%,铜铁合金的微观组织从连续交错的铁素体相逐渐演变为离散的球形和枝晶状分布,最终形成纯铜相,其中Cu-60% 时富Cu相与富Fe相分布最均匀。合金硬度随铜质量分数增加先升高后降低,少量铜促进珠光体形成提高硬度,而过量铜因软相增多导致硬度下降。得益于铜的优异导电性,表面接触电阻随铜质量分数增加逐渐降低。碳棒磨损量受铜铁合金硬度和接触对之间的摩擦系数共同影响,呈现先增后减的趋势:低铜质量分数时高硬度和摩擦系数加剧磨损,而高铜含量时润滑和散热性能改善,磨损减轻。
Copper-iron alloy has excellent electrical and thermal conductivity
excellent toughness and soft magnetic properties
and is an excellent electrical contact and electromagnetic shielding material
which has broad application prospects in electronic communication electrical contact devices and electromagnetic shielding equipment of aerospace
national defense and military industry. In this paper
copper-iron alloys with different copper mass fraction were prepared by double-wire arc additive manufacturing technology
and their microstructure
hardness
dynamic surface contact resistance and wear of carbon rods were tested by metallurgical microscope
Vickers hardness tester and currentcarrying friction and wear tester. The results demonstrate that as the copper mass fraction increases from 0 to 100%
the microstructure of the copper-iron alloy evolves from a continuous interlaced ferrite phase to a discrete spherical and dendritic distribution
ultimately forming a pure copper phase. At 60% copper mass fraction
the Cu-rich and Fe-rich phases exhibit the most uniform distribution. The hardness of the alloy initially increases and subsequently decreases with however
an excessive amount of copper leads to a decrease in hardness due to the increased presence of softer phases. The surface contact resistance progressively decreases with increasing copper content due to copper’s superior electrical conductivity. The wear of the carbon rod is influenced by the hardness of copper-iron alloys and the friction coefficient between the contact pairs
exhibiting a trend of first increasing and then decreasing: at low copper content
high hardness and friction coefficient exacerbate wear
while at high copper content
improved lubrication and heat dissipation performance mitigate wear.
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